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Senior Benchmark & Performance Engineer – AI & Storage Systems

Job in Coos Bay, Coos County, Oregon, 97458, USA
Listing for: DDN
Full Time position
Listed on 2026-01-01
Job specializations:
  • IT/Tech
    AI Engineer, Data Engineer
Job Description & How to Apply Below

Overview

This is an incredible opportunity to be part of a company that has been at the forefront of AI and high-performance data storage innovation for over two decades. Data Direct Networks (DDN) is a global market leader renowned for powering many of the world's most demanding AI data centers, in industries ranging from life sciences and healthcare to financial services, autonomous cars, Government, academia, research and manufacturing.

"DDN's A3I solutions are transforming the landscape of AI infrastructure." – IDC

“The real differentiator is DDN. I never hesitate to recommend DDN. DDN is the de facto name for AI Storage in high performance environments” - Marc Hamilton, VP, Solutions Architecture & Engineering | NVIDIA

DDN is the global leader in AI and multi-cloud data management  cutting-edge data intelligence platform is designed to accelerate AI workloads, enabling organizations to extract maximum value from their data. With a proven track record of performance, reliability, and scalability, DDN empowers businesses to tackle the most challenging AI and data-intensive workloads with confidence.

Our success is driven by our unwavering commitment to innovation, customer-centricity, and a team of passionate professionals who bring their expertise and dedication to every project. This is a chance to make a significant impact at a company that is shaping the future of AI and data management.

Our commitment to innovation, customer success, and market leadership makes this an exciting and rewarding role for a driven professional looking to make a lasting impact in the world of AI and data storage.

Job Description

We are seeking an experienced Senior Benchmark Engineer with deep expertise in AI workloads
, parallel applications
, and storage systems
. You will be responsible for designing, executing, and analyzing complex benchmarks to evaluate and optimize performance across a range of infrastructure stacks — including AI inference
, training
, NVIDIA NIMs
, RAG pipelines
, and MPI-based HPC codes
.

This role involves compiling and debugging large-scale distributed applications, creating automated benchmark pipelines, writing up detailed technical reports, and working closely with both engineering and field teams to communicate findings and architectural advantages.

Key Responsibilities
  • Design and execute performance benchmarks across AI, HPC, and storage platforms.
  • Run and tune AI inference workloads using frameworks such as PyTorch, Tensor Flow, Triton, NVIDIA NIMs, and vector databases.
  • Benchmark large-scale RAG pipelines including data ingestion, retrieval, and inference performance.
  • Profile and optimize MPI and multi-node distributed applications.
  • Compile and debug C/C++, Python, and CUDA-based codes across heterogeneous systems.
  • Generate automated test scripts and benchmarking workflows (e.g., with Bash, Python, or Slurm job scripts).
  • Analyze and visualize results using Excel, Jupyter, or reporting tools; create comparison graphs and KPIs.
  • Write clear, concise performance reports for both technical and non-technical stakeholders.
  • Present findings internally and externally, translating results into architectural guidance for field engineers and sales teams.
  • Collaborate with system engineers, product managers, and partners to tune and improve software/hardware stack performance.
  • Validate and tune performance on storage systems including parallel file systems (e.g., Lustre, GPFS), object storage, and NVMe over Fabrics.
  • Contribute to internal tooling to automate test cycles and performance regression tracking.
Required Qualifications
  • 7+ years of experience in performance engineering, benchmarking, or HPC/AI systems.
  • Deep experience with AI/ML and deep learning frameworks (PyTorch, Tensor Flow, ONNX, Triton).
  • Familiarity with NVIDIA NIMs and containerized model serving stacks.
  • Proven expertise with MPI, OpenMP, Slurm or similar schedulers in large-scale compute environments.
  • Solid understanding of file and storage systems (e.g., POSIX, Lustre, S3, NVMe-oF).
  • Strong Linux skills (debugging, tuning, networking, storage stack).
  • Proficiency in scripting (e.g., Bash, Python) for job orchestration and result parsing.
  • Ability to…
Position Requirements
10+ Years work experience
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